Hydrogen-Induced Formation of Surface Acid Sites on Pt/Al(PO3)3 Enables Remarkably Efficient Hydrogenolysis of C-O Bonds in Alcohols and Ethers

被引:5
|
作者
Oshida, Kento [1 ]
Yuan, Kang [1 ]
Yamazaki, Yukari [1 ]
Tsukimura, Rio [1 ]
Nishio, Hidenori [2 ]
Nomoto, Katsutoshi [2 ]
Miura, Hiroki [2 ]
Shishido, Tetsuya [2 ]
Jin, Xiongjie [1 ]
Nozaki, Kyoko [1 ]
机构
[1] Univ Tokyo, Grad Sch Engn, Dept Chem & Biotechnol, Bunkyo Ku, 7-3-1 Hongo, Tokyo 1138656, Japan
[2] Tokyo Metropolitan Univ, Grad Sch Urban Environm Sci, Dept Appl Chem Environm, 1-1 Minami Osawa, Hachioji, Tokyo 1920397, Japan
关键词
heterogeneous catalysis; hydrogenolysis; C-O bonds; alcohols; ethers; SELECTIVE HYDROGENOLYSIS; NICKEL-CATALYST; CYCLIC ETHERS; ARYL ETHERS; BIOMASS; LIGNIN; CONVERSION; CLEAVAGE; HYDRODEOXYGENATION; DIESEL;
D O I
10.1002/anie.202403092
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The hydrogenolysis of oxygenates such as alcohols and ethers is central to the biomass valorization and also a valuable transformation in organic synthesis. However, a mild and efficient catalyst system for the hydrogenolysis of a large variety of alcohols and ethers with various functional groups is still underdeveloped. Here, we report an aluminum metaphosphate-supported Pt nanoparticles (Pt/Al(PO3)(3)) for the hydrogenolysis of a wide variety of primary, secondary, and tertiary alkyl and benzylic alcohols, and dialkyl, aryl alkyl, and diaryl ethers, including biomass-derived furanic compounds, under mild conditions (0.1-1 atm of H-2, as low as 70 degrees C). Mechanistic studies suggested that H-2 induces formation of the surface Br & oslash;nsted acid sites via its cleavage by supported Pt nanoparticles. Accordingly, the high efficiency and the wide applicability of the catalyst system are attributed to the activation and cleavage of C-O bonds by the hydrogen-induced Br & oslash;nsted acid sites with the assistance of Lewis acidic Al sites on the catalyst surface. The high efficiency of the catalyst implies its potential application in energy-efficient biomass valorization or fine chemical synthesis.
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页数:11
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